(19)
(11) EP 0 146 665 B1

(12) EUROPEAN PATENT SPECIFICATION

(45) Mention of the grant of the patent:
04.07.1990 Bulletin 1990/27

(21) Application number: 84100798.2

(22) Date of filing: 06.03.1981
(51) International Patent Classification (IPC)5B67D 5/08, G01D 9/06, G06F 15/22, B67D 5/14, G01F 25/00

(54)

Fluid commodity delivery system

Abgabesystem für flüssige Konsumgütern

Système pour délivrer des biens de consommation liquides


(84) Designated Contracting States:
BE DE FR GB IT SE

(30) Priority: 10.03.1980 US 128647

(43) Date of publication of application:
03.07.1985 Bulletin 1985/27

(62) Application number of the earlier application in accordance with Art. 76 EPC:
81300946.1 / 0035888

(73) Proprietor: EXXON RESEARCH AND ENGINEERING COMPANY
Florham Park, New Jersey 07932-0390 (US)

(72) Inventors:
  • Berstein, Patricio Esteban Katz
    Thornhill Ontario (CA)
  • Stephens, Walter Randolph
    Islington Ontario (CA)

(74) Representative: Mitchell, Alan et al
ESSO Engineering (Europe) Ltd. Patents & Licences Mailpoint 72 Esso House Ermyn Way
Leatherhead, Surrey KT22 8XE
Leatherhead, Surrey KT22 8XE (GB)


(56) References cited: : 
DE-A- 2 166 681
US-A- 3 965 341
US-A- 4 188 618
FR-A- 2 225 725
US-A- 4 179 740
   
  • REGELUNGSTECHNISCHE PRAXIS, vol. 10, no. 1, 1968, pages 19-23, R. Oldenburg Verlag, Munich, DE; A. GROPENGIESSER: "Elektronische Messwertverarbeitung für Flüssigkeits- und Gasmessung"
   
Note: Within nine months from the publication of the mention of the grant of the European patent, any person may give notice to the European Patent Office of opposition to the European patent granted. Notice of opposition shall be filed in a written reasoned statement. It shall not be deemed to have been filed until the opposition fee has been paid. (Art. 99(1) European Patent Convention).


Description


[0001] This invention pertains to the delivery of fluids, and more particularly to a data network such as disclosed and claimed in our co-pending European Patent application 81300946.1 (patent 0035888) filed on the 6th March, 1981 and in respect of which the present application is a divisonal application.

[0002] In the delivery of fluid commodities such as fuel oils and home heating oils, etc., the present methods and systems for accurately recording deliveries, and for processing the delivery data at the home offices are not entirely satisfactory. Much of the truck data gathered from the delivery of fuel oils is in the form of trip tickets and summary reports, which presently require manual handling. This manual handling is time consuming and expensive.

[0003] In recent times, several electronic fluid register systems have appeared in the market place such as the new electronic Lockheed 840 System made by Lockheed Electronics, Plainfield, New Jersey, and the MID-COM 6500 System, made by Midwest Computer Register Corporation, Hampton, Iowa, etc. The essential change in these fluid registers is that the mechanical computation and register functions have been converted to an electronic method and do not reflect any significant expansion of operating capability. Sales information is still produced on printed paper for subsequent manual handling and entry into office located data processing centres.

[0004] In our aforementioned European patent application 81300946.1, there is disclosed and claimed a data network for accounting for a number of fluid commodity deliveries. The data network comprises a portable memory capsule, a first data station into which said capsule is operably connectable for entering delivery data and information into said portable memory capsule, and a second, portable, data station operably and movably carried by a fluid commodity delivery vehicle for transportation to various delivery sites, the vehicle having delivered commodity metering means. The capsule is also operably connectable into said second data station for retrieving delivery data and information from, and entering delivered commodity data and information into, the portable memory capsule. The second data station includes calculator means responsive to the metering means for calculating a bill amount from delivered commodity data and information corresponding to each commodity delivery and from delivery data and information for that delivery stored in said capsule.

[0005] There is also disclosed and claimed in our co-pending European patent application 81300946.1 a method of effecting deliveries of fluid commodities to a number of customers at various, respective delivery sites. The method comprises the steps of entering, at a data station, into a portable storage medium customer pricing data and information relating to fluid commodities to be delivered to a number of customers, placing said portable storage medium into communication with a calculator means, carried by a fluid commodity delivery vehicle, to provide for a two-way flow of information and data between said portable storage medium and said calculator means, obtaining a volume amount measurement of at least one fluid commodity being delivered to each given customer at a delivery site using a delivered commodity metering means, retrieving from said storage medium said pricing data and information corresponding to each of said fluid commodity deliveries, and responding, by arranging the calculator means to be responsive to said metering means, to said volume amount measurement and said corresponding pricing data and information for calculating a bill amount for each delivery to each of said corresponding customers.

[0006] European patent application 81300946.1 particularly relates to on-site deliveries of fluid commodities such as petroleum products, fuel oils, home heating oils, gasoline, etc., but is not meant to be limited to specific commodities. It is contemplated that the teachings and inventive novelties expressed herein can be equally applied to deliveries for milk, comestibles, chemicals, propane and other liquids and/or gases, etc.

[0007] The commodity delivery system features a portable data capsule comprising a non-volatile memory, which data capsule is fed information, including a general price format corresponding to deliveries of different fluid commodities to several different delivery zones. Price structures are dependent upon delivery zone and in some cases upon quantity discounts. In addition, the data capsule also contains billing codes corresponding to particular unit prices at particular delivery locations.

[0008] Each billing code is an address for retrieving a particular unit price stored in the data capsule. The corresponding unit price (price per gallon or litre of fluid) associated with each billing code is retrieved from the capsule in order to calculate a billing amount for each delivery.

[0009] Each day, a data capsule and billing tickets are provided to each delivery truck operator from a central data station. Each billing ticket specifies the customer to be serviced for that day, the fluids to be delivered to each customer, and the corresponding billing codes. Each delivery truck carries an electronic calculator device which may be a microprocessor. The electronic calculator device will be able to retrieve from each capsule the pricing data corresponding to each customer. The pricing data is obtained by entering the customer's corresponding billing code into the calculator via the calculator's keyboard, which billing code is obtained from the customer's ticket. At the beginning of each day's run, the truck operator will enter information into the calculator concerning any remaining inventory loaded into the truck from a previous day. The operator also will enter information regarding fluids which he currently loads at the depot.

[0010] During the delivery run, the operator inserts each customer ticket into a printer associated with the calculator. Next, he enters appropriate customer information into the calculator device including the proper billing code, and makes the fluid delivery. The calculator receives electronic signals from a volume sensing or measuring device, and retrieves a unit price from the data capsule. The calculator uses this information to calculate a billing amount for the delivered fluid commodity. This billing amount is recorded on a customer portion of the customer ticket, which customer portion is left with the customer, and serves as a bill. The billing amount is also recorded on a deliverymans' portion of the customer ticket, and serves as his receipt of the transaction.

[0011] During the day's run, additional information concerning loadings are entered into the calculator device.

[0012] All the information which is entered into the calculator is recorded in the data capsule memory. At the end of the day's run, the operator can retrieve all the stored data by requesting a compilation print-out from the calculator device. The compilation report will contain a complete summary of all the transactions of the day, including totals of each fluid loaded and delivered and the total dollar amount of the deliveries.

[0013] After each day's run, the data capsule and receipts are returned to the central data station for accounting and other purposes.

[0014] The present invention relates to a delivered fluid commodity entering apparatus which is used in the data network disclosed in our European patent application 81300946.1 (patent 0035888) and which provides a visual representation of a true delivered volume of the fluid commodity. It also relates to a method of effecting and billing deliveries of fluid commodities as disclosed in European patent application 81300946.1 (patent 0035888) which aims to provide a true measurement of the quantity of commodity delivered.

[0015] Reference is directed to U.S. patent 3,965,341A (Honey et al) which discloses a flow rate computer utilising a "look-up" table stored in a read only memory (ROM) pre-programmed with appropriate correction coefficients for correcting non-linearities in the response of a flowmeter. Reference is also directed to US-A-4188618 which relates to a tachograph data processing system for recording the performance of a vehicle.

[0016] In accordance with a first aspect of the present invention, there is provided a data network for accounting for a number of fluid commodity deliveries, comprising a portable memory capsule, a first data station into which said capsule is operably connectable for entering delivery data and information into said portable memory capsule, and a second, portable, data station operably and movably carried by a fluid commodity delivery vehicle for transportation to various delivery sites, said vehicle having delivered commodity metering means comprising a fluid flow sensor for providing electrical signals representing a quantitative measurement of the fluid flow of a fluid being delivered, said capsule being also operably connectable into said second data station for retrieving delivery data and information from, and entering delivered commodity data and information into, said portable memory capsule, said second data station comprising calculator means responsive to the electrical signals from the fluid flow sensor for calculating a bill amount from delivered commodity data and information corresponding to each commodity delivery and from delivery data and information for that delivery stored in said capsule, and also for converting said electrical signals to a visual representation of the delivered volume of said fluid, said second data station further comprising memory means electrically communicating with said calculator means for storing and providing a correction coefficient for said quantitative electrical measurement so as to correct the measured quantity of fluid delivered to a true delivered quantity, said memory means being operable in a calibration mode for entering and storing said correction coefficient based on anothe quantitative electrical measurement provided by said fluid flow sensor in response to prior delivery of a known volume of the same fluid.

[0017] The calculator means may comprise a central processor unit, a keyboard for entering delivered commodity data and information into, and retrieving delivery data and information from, the portable memory capsule, and a digital display, said visual representation of said delivered volume being a digital readout upon said display. The memory means may also comprise a non-volatile memory for storing said correction (or calibration) coefficients, said coefficients being adjustable to a new value through said keyboard of said calculator means, and/or a switch for operating said memory means in one of two modes, a first mode for adjusting said calibration coefficients and a second mode for supplying said calibration coefficients to said central processor unit. The memory means may also include means for preventing unauthorised personnel from having access to said switch.

[0018] In one arrangement said memory means is connected to said calculator means via a plug and socket connection. Suitably, said fluid flow sensor is provided with a fluid temperature sensing means for providing a delivered commodity temperature measurement, and the calculator means is arranged to correct the measured quantity of fuel delivered to a true delivered quantity, also in accordance with said temperature. The fluid flow sensor preferably comprises a rotor having magnetisable material disposed at circumferential locations about the periphery thereof, and at least one magnetic sensing head disposed adjacent to said rotor, and preferably two sensing heads which may be disposed on opposite sides of the rotor, for providing electrical signal pulses in response to relative movement of said rotor with respect to said magnetic sensing head. The rotor may be connected to an impeller which rotates in response to flow of said fluid commodity, and thus rotates said rotor with respect to said magnetic head or heads.

[0019] According to a second aspect of the invention, there is provided a method of effecting and billing deliveries of fluid commodities to a number of customers at various, respective, delivery sites, comprising the steps of entering, at a data station, into a portable storage medium customer pricing data and information relating to fluid commodities to be delivered to a number of customers, lacing said portable storage medium into communication with a calculator means, carried by a fluid commodity delivery vehicle, to provide for a two-way flow of information and data between said portable storage medium and said calculator means, obtaining a quantity measurement of at least one fluid commodity being delivered to each given customer at a delivery site using a delivered commodity metering means, retrieving from said storage medium said pricing data and information corresponding to each of said fluid commodity deliveries, and responding, by arranging said calculator means responsive to said metering means, to said quantity measurement and said corresponding pricing data and information for calculating a bill amount for each delivery to each of said corresponding customers, said quantity measurement being obtained electronically from said metering means by providing a first electrical output representative of the quantity of fluid commodity delivered, retrieving a stored correction coefficient and electronically calculating a true delivered quantity of correcting said quantity measurement in accordance with said retrieved correction coefficient, said method further comprising the calibration steps of electronically measuring a known quantity and providing a second electrical output representative of said known quantity, determining at least one correction coefficient for said known quantity in response to said electrical output, so that said electrical output is a true representation of the value of said known quantity, and electronically storing that correction coefficient for use in calculating said true delivered quantity.

[0020] In this method more than one quantity measurement may be made and the calibration steps may be repeated for each subsequent quantity measurement.

[0021] The method may involve the further steps of displaying the quantity measurement and, if different from a true delivered quantity, then entering said true delivered quantity for said quantity measurement into a calculator for the said determination of at least one correction (or calibration) coefficient, and/or displaying the electronically calculated true delivered quantity.

[0022] The invention will be better understood from the following description given by way of example and with reference to the following detailed description taken in conjunction with the accompanying drawings, in which:-

Fig. 1 is a schematic view of a data network for the delivery of fluid commodities;

Fig. 1a is a schematic view of the calculator and printing devices used in the data network of Fig. 1.

Fig. 2 is a schematic view of a calibrating mechanism communicating with the calculator device shown in Fig. 1a a and forming one preferred embodiment of the invention;

Fig. 3 is a diagrammatic view of the delivery system for the data network illustrated in Fig. 1;

Fig. 4 is a plan view of the keyboard and display for the calculator device of Fig. 1a; and

Fig. 5 is a schematic view of a typical flow sensor utilised in the delivery system depicted in Fig. 3.



[0023] The invention is for a method, system and data network for the delivery of fluid commodities to customers located at various delivery sites. The method, system and data network utilise a unique data capture capsule, which contains a prerecorded pricing format for computing a billing amount for each fluid delivery. The data capsule is a portable memory storage unit which is obtained from a central data station by each delivery operator at the beginning of each day's delivery run. The data capsule supplies the pricing data for each delivery, and also records each delivery transaction, including the loading of bulk amounts of fluid into the delivery truck at a loading depot. At the end of delivery run or day's transactions, the data capsule provides for the print-out of a summary or compilation report of all the transactions of the day. The capsule may be returned to the central data station to update each customer's file contained in a master computer.

[0024] Now referring to Fig. 1, a data network is generally shown for a fluid commodity delivery system which is particularly applicable to fuel deliveres. The data network comprises a fixed, central data station generally having a main computer 10 which communicates with a data console 11 having a keyboard 12 and a display screen 13. The main computer 10 computes amongst other items of information degree-day data, in order to determine the needs and requirements of fuel oil customers.

[0025] Each day, the computer 10 will determine a plurality of customers needing a fuel oil delivery for each delivery route, i.e., each delivery truck will be given information regarding a number of customers who are running low offuel oil. The main computer 10 is programmed with a customerticket printing routine, which is invokable through the console 11 by pressing the print button 14. When the button 14 is depressed on console 11, a plurality of customer tickets 15 will be ejected from slot 16 on the console 11. Each customer ticket 15 (typical) will contain amongst other information, the customer's name and address, the type of fuel oil or other petroleum products to be delivered, a billing code, the delivery zone, the tax to be added to the delivery price, etc.

[0026] Each customer ticket will be sectioned into three different receipt portions: (a) a customer receipt portion, (b) a truck operator receipt portion, and (c) a data centre receipt portion.

[0027] The customer receipt portion will be used as a means of billing the customer. This receipt portion will be left with the customer at the delivery site, and will the delivery and bill amount imprinted thereon at the time of delivery.

[0028] The truck operator receipt portion will be used by the truck operator to verify the delivery data when a compilation report is prepared.

[0029] The data centre receipt will be used by the central office for accounting purposes.

[0030] Additional data or information can be added to any individual customer ticket 15 via the keyboard 12 of the console 11, such as a customer address or a fuel delivery allocation amount in times of shortages.

[0031] The console 11 is also provided with a slot 17 for the insertion of a data capsule 18 (typical). A data capsule 18 is provided to each bulk operator and is a portable memory storage unit which is used to record the entire daily transactions of the particular delivery truck.

[0032] The typical data capsule 18 can be an encapsulated (modular) non-volatile, semi-conductor, erasable memory with a capacity for 4,096 digits of information in order to accommodate over one hundred delivery transactions.

[0033] Each of the data capsules 18 is identical and is programmed with a price format via the computer 10. The price format comprises the unit price (price/litre or gallon) of each of several commodities to be delivered, e.g., home heating oil, diesel fuel, gasoline, etc. The particular unit price for each delivery will be subsequently multiplied by the delivered volume in order to calculate a billing amount at each delivery site. Each particular fuel will have more than one unit price depending upon delivery zone or in some cases a quantity discount, i.e., fuels needing to be transported a greater distance will have a higher unit price.

[0034] The portable capsule 18 will also contain different tax structures to be applied to each particular delivery when computing the billing amount, since different fuels will be taxed at different rates.

[0035] The proper unit price is obtained for each particular delivery or customer by entering into a truck calculator, the zone and a billing code, as will be explained in more detail hereinafter. The proper billing code is obtained from each customer ticket, and when entered into the calculator device will act as a memory locating address.

[0036] As part of the data network, each delivery truck vehicle 19 will be provided with a calculator device 20 (also shown in Fig. 1a). The calculator device can be permanently mounted in the cab 21 of the truck 19 for the convenience of the truck operator, and to discourage theft or tampering by unauthorized personnel. The calculator 20 has a peripheral printing device 22 electrically connected thereto, for the purpose of printing a billing amount on each customer ticket, and for printing a compilation report at the end of each day's delivery run.

[0037] The calculator device 20 can be a general purpose computer, but is preferably a microprocessor, such as an Intel model 8085 manufactured by the Intel Corporation, Santa Clara, California, U.S.A. A sub-function of the processor has 256 words of RAM memory capable of accessing up to 16 I/O sub-systems. The process sub-function has a hardware multiplier which computes the product of two BCD digits. This is for the purpose of calculating a billing amount for each delivery which requires a multiplication between the unit price obtained from the portable memory capsule 18 and a delivered volume amount. The delivered volume amount can be obtained from an electrical pulse-generating flow meter, as will be explained in more detail hereinafter.

[0038] At the beginning of each day, each truck operator will obtain a portable data capsule 18, and a number of customer tickets 15 from the central station, as aforementioned. The truck operator will begin the delivery procedure by inserting the capsule 18 into slot 23, disposed on the upper face panel 25 of the calculator 20, as illustrated in Figs. 1a and 4. The upper face panel 25 of the calculator 20 comprises a keyboard 24 comprising three sections 24a, 24b, and 24c, respectively, as depicted in detail in Fig. 4. The upper face panel 25 of the calculator 20 also comprises a display window 26, and a totalizer 27, i.e., an electromechanical volume register operating in a continuously ascending register mode.

[0039] The activity of the operator at the beginning of the day will relate primarily to initializing the capsule 18 via calculator 20 in order to properly record data for the subsequent fuel deliveries. With the capsule 18 in place (deposited in slot 23 on the panel 25), the calculator 20 is now in communication with the capsule memory. Data and information can be entered into, and retrieved from, the data capsule by depressing the appropriate input key 31 and retrieval key 34, respectively, on the keyboard 24 of the calculator 20, as illustrated in Fig. 1a. The operator will key-in basic information into the capsule 18 such as: the date, his identification number, the odometer reading of his truck, the register amount appearing in the totalizer 27, and any inventory amount of each fluid commodity remaining in his truck from the previous day. Section 24a contains the operation instructions 28 (typical) which are printed on each key 34 used to initialize the capsule 18.

[0040] The calculator 20 has a standard-type of routine well known in the art for guiding the operator through the workings of the keyboard operation. Each key 34 has an LED 29 (typical) which illustrates over the instructions 28 printed on the key 34, when information is requested. When the proper response is furnished, the next programmed LED 29 will be illuminated, while the previous LED 29 is extinguished. For example, when the power to the calculator 20 is turned on, the LED 29a for instructions 28a becomes illuminated, indicating that the data capsule 18 is required to be inserted in slot 23. After the proper insertion of the capsule 18, LED 29a is extinguished and LED 29b is illuminated. The operator is now required to enter the date (a numerical entry) via the numerical keys 31 (typical) in section 24b.

[0041] When the operator keys in the date, the date will appear in the display window 26. If the operator has an error in the keying of the date as indicated in the display, he can clear this entry by depressing the clear button 30. If the operator has correctly entered the date, he will then depress the enter button 32. After the entry, button 32 is depressed, LED 29b will go out and LED 29c will illuminate, indicating the requirement for entering the driver identification number via keys 31. When the operator keys-in his identification number, the display 26 will show this entry. If it is correct, the enter button 32 is displayed depressed, LED 29c will be extinguished, and the "Odometer" LED 29d will become illuminated.

[0042] In this fashion, the operator is led through the initializing procedure. If at any time, the operator desires to recall any information, he may depress the appropriate retrievel key 34 on panel 25, and the data will appear in the display window 26. Depressing the clear button 30 will then return the keyboard to the proper place in the routine.

[0043] The initialization procedure will be terminated when the "Volume" instruction, LED 29e, is extinguished. This is accomplished by properly entering the previous day's remaining fluid inventories via data input buttons 31.

[0044] After initialization of the capsule 18, the operator may load further amounts of fuel(s) at the depot, if his inventories are low. After the operator loads the various products, the load ticket button 36 is depressed and LED 29f is activated. The number of the load ticket is entered into the display 26 via key 31. The enter button 32 is depressed to extinguish LED 29f and illuminate the "Volume" LED 29e.

[0045] A product code relating to a particular fluid commodity will now appear in the display 26. If this product is being loaded into the truck, the operator enters the loaded volume via key 31 and presses the enter key 32. Now, the next product code appears in the display window 26, and the procedure is repeated until all the products have been recorded. If a particular product has not been loaded, the enter button 32 is depressed without entering any numerical amount.

[0046] When the volume for the last product has been entered, all the lights on panel 25 will be extinguished signifying that the truck is now loaded with products and is ready to make a delivery run.

[0047] Any previously entered product volumes will be automatically added to the newly entered product volumes by the calculator 20 to reflect the true inventory values.

[0048] At the customer sites, the truck operator must first insert the proper customer ticket 15 into the printer slot 40 and enter the customer code number via key 37. An interlock device located inside the printer 22 will then actuate a flow valve solenoid in the fuel delivery line to an open position. In this regard, the interlock insures that no delivery can be made without a customer ticket being printed for the transaction.

[0049] The operator is reminded to insert the customer ticket 15 into slot 40 by LED 29g which will illuminate when the pumping equipment is actuated.

[0050] A similar interlock is located in the calculator 20 to insure that fuel cannot be delivered if a data capsule 18 is not positioned in slot 23.

[0051] The keys controlling the delivery of products to the customer are generally located in section 24c of panel 25. The appropriate billing code and zone buttons 38 and 39 are respectively depressed and the billing code and zone for that particular customer are respectively entered in sequence into the calculator. As aforementioned, the proper billing code and zone information are obtained from the customer ticket 15. The calculator 20 will directly receive digital volume information from an electronic pulse generating flow sensor 42, generally shown in Fig. 5. The calculator will obtain the volume of the delivered product and multiply it by the unit price fetched from the memory capsule 18.

[0052] The calculator 20 will also subtract each delivery amount from the stored inventory volume in order to keep account of the various fuels remaining in the truck.

[0053] The totalizer 27, which is nothing more than a continuously ascending register will add each delivery volume to the prior total, thus indicating the total volume of all products delivered-to-date.

[0054] After the actual delivery has been achieved, the operator will press a print button 44 located on the front face of the printer 22. This will cause the billing amount to be printed upon the customer ticket 15, and the ticket can then be manually removed or automatically ejected from slot 40. The customer ticket can also be caused to be printed from outside the cab 21 of the truck by means of a remote control switch for the convenience of the delivery man.

[0055] Other buttons in section 24c of panel 25 may be actuated as part of the delivery and billing procedure print-out. The keying of the "cash", "cheque", or "charge" buttons 47,48, and 49, respectively, will record the type of payment being made by the customer.

[0056] The delivery of a predetermined volume or price amount, as in the case of shortage allotments may be entered by keys 51 and 52, respectively. When either one of these buttons is depressed, the calculator will automatically compute the volume (in the case of a present price amount) to be delivered, and will automatically control the electrically actuated flow control solenoid (not shown) to shut off the delivery of fuel at the proper time. Again, the delivered volume will be directly digitally fed to the calculator 20 from the flow sensor 42 (Fig. 5).

[0057] Referring now to Fig. 5, a schematic view of one type of flow sensor device 42 which can be used in the present system, is illustrated. The flow sensor or measurement device 42 may be a Potter pulse-generating flow meter, manufactured by Potter Instruments Company, or a pulse-generating flow measuring device similar to that shown in the U.S. Patent to J. R. Wiegand, entitled: "Pulse Generator", Patent No. 3,780,313; issued December 18, 1973. Pulse-generating flow meters are quite common to the flow meter arts, and many commercial meters are available which are compatible with the present system.

[0058] The flow sensor 42 of Fig. 5 is similar to the device described in the aforementioned U.S. Patent No. 3,780,313, and any description of the pulse-generator of that patent is meant to be included herein by way of reference.

[0059] The shaft 55 of the pulse-generating flow sensor 42 is connected to an impeller (not shown) disposed in the delivery flow line. The shaft 55 may also be connected to a mechanical meter flow drive mechanism. In certain jurisdictions, it may be necessary to retain the mechanical meter in order to satisfy certain "weights and measures" requirements. The volume amount may be introduced into calculator 20 directly as aforementioned, or the volume amount may be read from the mechanical meter and entered into the calculator 20 via the keyboard 24.

[0060] Shaft 55 will be caused to be rotated (arrow 56) in response to the fluid flow of the fuel being delivered. The rotor 47 fixedly attached to shaft 55 will rotate through a given rotational angle with respect to the passage of a known volume of fluid in the delivery line. A series of electrical pulses will be generated by the rotor 57 which carries a plurality of evenly-spaced two domain magnetic wires 58 disposed on its , periphery. The magnetic wires 58 rotate past two magnetic read heads 59 and 59'. As the wires 58 move past the magnetic read heads 59 and 59', respectively, a first magnetic field in each read head will magnetically switch a first domain in each of the adjacent wires 58. When the wires 58 move adjacent an inductive pick-up coil (not shown) in each head, the second domain in each wire will be caused to be magnetized, thus resulting in an inductive biasing on the first domain. This inductive effect is sensed by the pick-up coil, thus producing a pulse in each magnetic head 59 and 59', respectively.

[0061] The system is designed to convert the number of pulses to a volume amount, e.g., 100 pulses per liter of delivered fuel. Two magnetic heads 59 and 59' are used to detect any defects in a particular wire 58. The system will sense in a quarter or half-revolution of the rotor 57 more pulses from one of the magnetic heads in the event one of the wires 58 is defective.

[0062] The generated electrical pulses are converted to a volume amount by the calculator 20 through the use of an algorithm based upon the following formula:

where:

T is the temperature of the fuel in °C;

C is the calibration coefficient;

K is the Viscosity associated with that particular fuel;

dv/dt is the change in fuel volume per fuel pulse per °C; and

AV is the fuel volume per fuel sensor pulse.

dv/dt is derived from the following formula:

where:

T is a temperature correction factor.



[0063] In those situations where the temperature correction is not contemplated, the aforementioned formula (1) reduces to

A temperature sensor in the fuel line (not shown) will provide the value for "T" in equation (1) above.



[0064] The temperature sensor can be an Analog Devices AD 590 grade M sensor or equivalent.

[0065] The temperature correction factor for each fuel may be stored in a non-volatile memory disposed in a volume calibrator 60 shown in Fig. 2. The volume calibrator 60 will also contain the calibration coefficient "C" for the fluid flow sensor 42. The non-volatility of calibrator 60 can be achieved by known non-volatile storage means, or by a volatile memory with battery back-up.

[0066] The calibrator 60 of Fig. 2 is electrically connected to the calculator 20 by means of a plug and socket arrangement as illustrated. The calibrator 60 is mechanically connected to the flow sensor via cable 63, which cable electrically connects the flow sensor to the calculator through the illustrated calibrator plug and socket arrangement.

[0067] The calibrator 60 operate in two modes: an operation mode; and a calibrating mode. A switch 61 protected by a sealable lid 62, can be thrown to either mode position as depicted by the arrows.

[0068] In the calibration mode, i.e., switch 61 is in the calibration position, a known volume tank is filled with fuel, and the sensor 42 will supply a number of pulses corresponding to the delivered volume. The calibrator 60 will supply a calibration coefficient to calculator 20. A volume amount will appear in display window 26. If the calibration of the sensor 42 is in need of adjustment as when the displayed volume does not coincide with the known delivered volume, the correct volume amount is keyed into the keyboard Section 24b. This will cause the calculator 20 to readjust the calibration coefficient, which is then fed into the memory of the calibrator 60. The true volume amount will also appear in display 26. The calibrator switch 61 is then returned to the operation position, and the lid 62 is sealed by authorized personnel. The calculator 20 is now ready for normal operations.

[0069] At frequent intervals, the calibration of sensor 42 may be checked to see if the displayed volume amount continues to correspond with a known volume delivered. If it is determined that a correction in the calibration coefficient is again required, the seal is broken, lid 62 is opened, and switch 61 is moved to the calibration position. The aforementioned procedure is then repeated.

[0070] The measurement and calibration method used herein may be briefly summarized as comprising the following steps of:

(a) Electronically measuring a known quantity and providing a first electrical output respective of said known quantity:

(b) determining at least one calibration coefficient for said known quantity in response to said electrical output;

(c) Electronically storing said calibration coefficient;

(d) Electronically measuring an unknown quantity and providing a second electrical output respective of said unknown quantity;

(e) Retrieving said stored calibration coefficient; and

(f) Electronically calculating a true quantity for said unknown quantity in accordance with said retrieved calibration coefficient and said second electrical output.



[0071] The calibrator 60 is purposely separated from the main calculator housing, so that a breakdown in the calculator 20 will not require a recalibration of sensor 42. If a calculator 20 should be in need of repair, the calculator 20 can be removed from the cab 21 of truck 19, and a new or repaired calculator 20 can be inserted therein without the need to recalibrate sensor 42.

[0072] At the end of each delivery run, or on a daily basis, a summary or compilation report may be obtained from the calculator 20 by pressing the print report button 54 in section 24a of the panel 25 (see Fig. 4). The "insert ticket" LED 29g will then illuminate. A compilation ticket 15' will then be inserted by the truck operator into slot 40 of the printer 22 shown in Fig. 1a.

[0073] The final odometer reading of the truck may be entered by keying-in the odometer setting in section 24b of panel 25.

[0074] When the enter button 32 is depressed, the calculator 20 will cause the printer 22 to print the summary report on ticket 15'.

[0075] The entire days' transactions will be summarized, including the print-out of bulk delivery volumes for each product, and bulk dollar amounts for each product.

[0076] Memory registers and routines for bulk totalizing are well known in the art, and are easily programmed into an Intel microprocessor, as shown by the U.S. Patent to F. T. Check, Jr. entitled: "Microcomputerized Electronic Postage Meter System", Patent No. 3,978,457; issued August 31, 1976. Such teachings are desired to be incorporated herein by reference.

[0077] After the compiliation report is printed upon ticket 15', the ticket 15' is removed or ejected from slot 40 (Fig. 1 a), and the portable data capsule 18 is removed from slot 23 on the face panel 25 of the calculator 20.

[0078] The truck operator will then return the capsule 18 to the central data station along with the station receipt portions of each customer ticket 15.

[0079] The compilation report 15' will also be deposited at the central data station.

[0080] Capsule 18 which has captured all the transactions of the delivery run, can now be plugged into slot 17 of console 11 (Fig. 1) to verify the receipts. All the transactions captured in capsule 18 will be displayed on the console display screen 13.

[0081] All the information contained in the capsule 18 will also be recorded in computer 10, which will update the master file.

[0082] The calculator or microprocessor system for the data network of Fig. 1 is illustrated in Fig. 3. The calculator 20 of Fig. 1 comprises a system employing a central processor unit, 100 for providing data flow control and for providing calculation of the billing amounts for each delivery in accordance with the received information from the data capsule 18, the flowmeter 42, the calibrator 60, and a fuel temperature sensor 101. Coupled to the CPU 100 is a permanent non-alterable memory or PROM 102 which stores the delivery program. A temporary or RAM memory 103 is also provided for storing and forwarding working data in accordance with the operation of the CPU 100.

[0083] The use of a non-volatile memory for data capsule 18 is important in that data which is significant in the system, i.e., data regarding each delivery, is permanently stored or captured.

[0084] Further interaction is provided with the CPU 100 by means of the keyboard 24, which provides the appropriate data and information to the CPU 100 for data keeping the calculation purposes. The display 26 also interfaces with the CPU 100 for recalling data from the temporary storage 103 in accordance with keyboard commands.

[0085] The ultimate output of the CPU 100 is coupled to a customer ticket and compilation report printer 22 for printing the various receipts, bills, and data reports.

[0086] Under the influence of the CPU 100, the flow of the fluid commodity can be controlled via the aforementioned valve control device 104 comprising a pair of solenoid actuated valves. One valve can effect a complete shut-off of the flow, as when either of the ticket interlock or capsule interlock is operative. The other valve can cause a slowing of the flow just prior to shut-off. As an added tamper-proof feature, the system may comprise a motion detector 105 and an appropriate interlock, which will automatically cause a customer ticket 15 to be printed and the delivery data to be entered into the capsule 18, if the truck is moved before the customer ticket has been printed. This or other interlocks may also be connected to the power train, braking system or ignition of the delivery vehicle.

[0087] All the various peripheral and interfacing components communicate with the CPU 100 via the data bus 106.


Claims

1. A data network for accounting for a number of fluid commodity deliveries, comprising a portable memory capsule (18), a first data station (11) into which said capsule (18) is operably connectable for entering delivery data and information into said portable memory capsule (18), and a second, portable, data station (20, 22) operably and movably carried by a fluid commodity delivery vehicle (19) for transporation to various delivery sites, said vehicle (19) having delivered commodity metering means comprising a fluid flow sensor (42) for providing electrical signals representing a quantitative measurement of the fluid flow of a fluid being delivered, said capsule (18) being also operably connectable into said second data station (20, 22) for retrieving delivery data and information from, and entering delivered commodity data and information into, said portable memory capsule (18), said second data station (20, 22) comprising calculator means (20) responsive to the electrical signals from the fluid flow sensor (42) for calculating a bill amount for delivered commodity data and information corresponding to each commodity delivery and from delivery data and information for that delivery stored in said capsule (18), and also for converting said electrical signals to a visual representation of the delivered volume of said fluid, said second data station (20, 22) further comprising memory means (60) electrically communicating with said calculator means (20) for storing and providing a correction coefficient for said quantitative electrical measurement so as to correct the measured quantity of fluid delivered to a true delivered quantity, said memory means (60) being operable in a calibration mode for entering and storing said correction coefficient based on another quantitative electrical measurement provided by said fluid flow sensor (42) in response to prior delivery of a known volume of the same fluid.
 
2. A data network according to Claim 1, characterised in that said calculator means (20) comprises a central processor unit (100), a keyboard (24) for entering delivered commodity data and information into, and retrieving delivery data and information from, the portable memory capsule (18), and a digital display (26), said visual representation of said delivered volume being a digital readout upon said display.
 
3. A data network according to Claim 2, characterised in that said memory means (60) comprises a non-volatile memory for storing said correction coefficient, said coefficient being adjustable to a new value through said keyboard (24) of said calculator means (20).
 
4. A data network according to any one of Claims 1 to 3, characterised in that said memory means (60) for storing and providing a correction coefficient for said quantitative electrical measurement has a switch (61) for operating said memory means (60) in one of two modes, a first mode for adjusting said calibration coefficient and a second mode for supplying said calibration coefficient to said central processor unit (100).
 
5. A data network according to claim 4, characterised in that said memory means (60) has means (62) for preventing unauthorised personnel from having access to said switch (61).
 
6. A data network according to any one of Claims 1 to 5, characterised in that said memory means (60) is connected to said calculator means (20) via a plug and socket connection.
 
7 A data network according to any one of Claims 1 to 6, characterised in that said fluid flow sensor (42) is provided with a fluid temperature sensing means (101) for providing a delivered fluid temperature measurement, and the calculator means (20) is arranged to correct the measured quantity of fuel delivered to a true delivered quantity, also in accordance with said temperature measurement.
 
8. A data network according to any one of Claims 1 to 7, characterised in that said fluid flow sensor (42) comprises a rotor (57) having magnetisable material disposed at circumferential locations about the periphery thereof, and at least one magnetic sensing head (59, 59') disposed adjacent to said rotor (57) for providing electrical signal pulses in response to relative movement of said rotor (57) with respect to said magnetic sensing head (59, 59').
 
9. A data network according to Claim 8, characterised in that there are two magnetic sensing heads (59, 59') in said fluid sensor (42).
 
10. A data network according to Claim 9, characterised in that said two magnetic sensing heads (59, 59') are disposed on opposite sides of said rotor (57).
 
11. A data network according to Claim 8, 9 or 10, characterised in that said rotor (57) is connected to an impeller which rotates in response to flow of said fluid, and thus rotates said rotor (57) with respect to said magnetic head or heads (59, 59').
 
12. A method of effecting and billing deliveries of fluid commodities to a number of customers at various, respective, delivery sites, comprising the steps of entering, at a data station (11), into a portable storage medium (18) customer pricing data and information relating to fluid commodities to be delivered to a number of customers, placing said portable storage medium (18) into communication with a calculator means (20), carried by a fluid commodity delivery vehicle (19), to provide for a two-way flow of information and data between said portable storage medium (18) and said calculator means (20), obtaining a quantity measurement of at least one fluid commodity being delivered to each given customer at a delivery site using a delivered commodity metering means (42), retrieving from said storage medium (18) said pricing data and information corresponding to each of said fluid commodity deliveries, and responding, by arranging said calculator means responsive to said metering means (42), to said quantity measurement and said corresponding pricing data and information for calculating a bill amount for each delivery to each of said corresponding customers, said quantity measurement being obtained electronically from said metering means (42) by providing a first electrical output representative of the quantity of fluid commodity delivered, retrieving a stored correction coefficient and electronically calculating a true delivered quantity of correcting said quantity measurement in accordance with said retrieved correction coefficient, said method further comprising the calibration steps of electronically measuring a known quantity and providing a second electrical output representative of said known quantity, determining at least one correction coefficient for said known quantity in response to said electrical output, so that said electrical output is a true representation of the value of said known quantity, and electronically storing that correction coefficient for use in calculating said true delivered quantity.
 
13. A method according to Claim 12, characterised in that more than one quantity measurement is made and the calibration steps are repeated for each subsequent quantity measurement.
 
14. A method according to Claim 12 or 13, characterised by the further steps of displaying the quantity measurement and, if different from a true delivered quantity, then entering said delivered quantity for said quantity measurement into a calculator for the said determination of at least one correction coefficient.
 
15. A method according to Claim 12, 13 or 14, characterised by the further steps of displaying the. electronically calculated true delivered quantity.
 


Ansprüche

1. Datenverarbeitungssystem zur Berechnung einer Anzahl von Flüssigproduktabgaben, mit einer tragbaren Speicherbox (18), einer ersten Datenstation (11), an die die Box (18) funktionsfähig anschließbar ist, um Abgabedaten und Information in die tragbare Speicherbox (18) einzugeben, und mit einer zweiten, tragbaren Datenstation (20, 22), die von einem Tanklastzug (19) funktionsfähig und beweglich mitgeführt wird, um an verschiedene Abgabeorte transportierbar zu sein, wobei der Tanklastzug (19) Produktabgabe-Meßgeräte aufweist, die einen Flüssigkeitsströmungssensor (42) einschließen, der elektrische Signale für eine quantitative Messung der Fluidströmung eines abzugebenden Fluids liefert, wobei die Box (18) außerdem an die zweite Datenstation (20, 22) funktionsfähig anschließbar ist, um Abgabedaten und Information davon zu entnehmen und um Abgabeproduktdaten und Information in die tragbare Speicherbox (18) einzugeben, wobei die zweite Datenstation (20, 22) einen Rechner (20) aufweist, der von den elektrischen Signalen des Flüssigkeitsströmungssensors (42) angesteuert wird, um einen Rechnungsbetrag aus den Abgabeproduktdaten und der Information für jede Produktabgabe und aus Abgabedaten und Information für die in der Box (18) gespeicherte Abgabe zu berechnen, und um außerdem die elektrischen Signale in eine visuelle Anzeige der abgegebenen Fluidmenge umzusetzen, wobei die zweite Datenstation (20, 22) ferner Speichermittel (60) aufweist, die mit dem Rechner (20) elektrisch kommunizieren, um einen Korrekturkoeffizienten für die quantitative elektrische Messung zu speichern und zu liefern, damit dei gemessene Menge des abgegebenen Fluids in eine tatsächlich abgegebene Menge korrigiert wird, wobei das Speichermittel (60) in einem Kalibrierungsmodus betreibbar ist, um den Korrekturoeffizienten basierend auf einer anderen quantitativen elektrischen Messung, die von dem Flüssigkeitsströmungssensor (42) bei einer vorhergehenden Abgabe einer bekannten Menge des gleichen Fluids geliefert wurde, einzugeben und zu speichern.
 
2. Datenverarbeitungssystem nach Anspruch 1, dadurch gekennzeichnet, daß der Rechner (20) eine Zentraleinheit (100), ein Tastenfeld (24) für die Eingabe der abgebenen Produktdaten und Information und für das Abrufen von Abgabedaten und Information in die und aus der tragbaren Speicherbox (18) aufweist und daß er eine digitale Anzeige (26) besitzt, wobei die visuelle Anzeige des abgegegebenen Volumens eine Digitalablesung auf der Anzeige ist.
 
3. Datenverarbeitungssystem nach Anspruch 2, dadurch gekennzeichnet, daß die Speichereinheit (60) einen Permanentspeicher zur Abspeicherung des Korrekturkoeffizienten aufweist, wobei der Korrekturkoeffizient über die Tastatur (24) des Rechners (20) durch einen neuen Wert ersetzbar ist.
 
4. Datenverarbeitungssystem nach einem der Ansprüche 1 bis 3, dadurch gekennzeichnet, daß die Speichereinheit (60) zur Abspeicherung und Bereitstellung eines Korrekturkoeffizienten für besagten elektrischen Meßwert einen Schalter (61) aufweist, um eine von zwei Betriebsarten der Speichereinheit (60) auszuwählen, nämlich eine erste Betriebsart zur Einstellung des besagten Korrekturkoeffizienten und eine zweite, in der besagter Korrekturkoeffizient an die Zentraleinheit (100) übergeben wird.
 
5. Datenverarbeitungssystem nach Anspruch 4, dadurch gekennzeichnet, daß die Speichereinheit (60) eine Vorrichtung (62) aufweist, die den Zugriff nicht autorisierter Personen auf besagten Schalter (61) verhindert.
 
6. Datenverarbeitungssystem nach einem der Ansprüche 1 bis 5, dadurch gekennzeichnet, daß die Speichereinheit (60) mit besagter Recheneinheit (20) über Stecker und Steckdose miteinander verbunden ist.
 
7. Datenverarbeitungssystem nach einem der Ansprüche 1 bis 6, dadurch gekennzeichnet, daß besagter Flüssigkeitsströmungssensor (42) mit einer Meßvorrichtung (101) für die Flüssigkeitstemperatur ausgestattet ist, um die Temperatur der abgegebenen Flüssigkeit zu bestimmen, und daß die Recheneinheit (20) so ausgelegt ist, daß der Meßwert der abgegebenen Flüssigkeitsmenge in eine wahre abgegebene Flüssigkeitsmenge korrigiert wird, auch unter Berücksichtigung besagter Temperaturmessung.
 
8. Datenverarbeitungssystem nach einem der Ansprüche 1 bis 7, dadurch gekennzeichnet, daß der Flüssigkeitsströmungssensor (42) einen Rotor (57) enthält, auf dessen Flügelblättern am äußeren Rand magnetische Substanzen aufgebracht sind, und daß wenigstens ein Magnetmeßkopf (59, 59') neben dem Rotor angebracht ist, um elektrische Signale zu liefern, die durch die Bewegung des Rotors (57) relativ zu besagtem Magnetmeßkopf (59, 59') verursacht werden.
 
9. Datenverarbeitungssystem nach Anspruch 8, dadurch gekennzeichnet, daß der Flüssigkeitsströmungssensor (42) zwei Magnetmeßköpfe (59, 59') aufweist.
 
10. Datenverarbeitungssystem nach Anspruch 9, dadurch gekennzeichnet, daß die Magnetmeßköpfe (59, 59') an gegenüberliegenden Seiten des Rotors (57) angebracht sind.
 
11. Datenverarbeitungssystem nach Anspruch 8, 9 oder 10, dadurch gekennzeichnet, daß der Rotor 57 mit einem Schaufelrad verbunden ist, das von dem Flüssigkeitsstrom angetrieben wird, so daß sich der Rotor (57) relativ zu den Magnetmeßköpfen (59, 59') dreht.
 
12. Verfahren zur Ausführung und Berechnung von Fluid-Lieferungen an eine Anzahl von Kunden an jeweils verschiedenen Auslieferungsorten, mit folgenden Schritten: Eingeben von Abnehmerpreisen und Informationen betreffend die an die Kunden auszulieferden Flüssigkeiten in eine bewegliche Speichereinheit (18) an einer Datenstation (11); anschließendes Verbinden der transportablen Speichereinheit (18) mit einer in einem Tanklastzug (19) befindlichen Recheneinheit (20), um einen zweiseitigen Daten- und Informationsaustausch zwischen der beweglichen Speichereinheit (18) und der Recheneinheit (20) zu erreichen; ferner wird mit einem Meßgerät (42) für die Liefermenge bei jedem Kunden am Auslieferungsort die abgegebene Menge wenigstens einer Flüssigkeit bestimmt und die Abnehmerpreise und Informationen betreffend die jeweilige Flüssigkeitslieferung werden aus der Speichereinheit (18) entnommen; durch Anschließen der Recheneinheit an das Meßgerät (42) wird der Mengenmessung und mit den zugehörigen Abnehmerpreisen und -informationen der Rechnungsbetrag für jede Lieferung an den jeweils entsprechenden Kunden erstellt, wobei die Mengenmessung elektronisch von dem Meßgerät (42) bereitgestellt wird, indem eine erste elektrisch Ausgabe die abgegebene Flüssigkeitsproduktmenge darstellt; das die gelieferte Flüssigkeitsmenge quantifizierende elektrische Signal wird durch Abruf eines gespeicherten Korrekturkoeffizienten elektronisch in eine wahre Liefermenge umgerechnet, indem besagter abgerufener Korrekturkoeffizient besagte Mengenmessung kalibriert, wobei das Verfahren weiterhin Kalibrationsschritte in der Weise beinhaltet, daß die elektronischer Messung einer bekannten Menge ein zweites elektrisches Signal ausgegeben wird, das die bekannte Menge quantifiziert, so daß wenigstens ein Korrekturkoeffizient bestimmt wird, der besagtes elektrisches Signal und besagte bekannte Menge in Beziehung setzt, womit besagtes elektrisches Signal eine tatsächliche Darstellung für den Wert der bekannten Menge wird, und elektronisches Abspeichern des Korrekturkoeffizienten zur Berechnung der wahren Liefermenge.
 
13. Verfahren nach Anspruch 12, dadurch gekennzeichnet, daß mehr als eine Mengenmessung durchgeführt wird, und daß die Kalibrationsschritte in aufeinanderfolgenden Mengenmessungen wiederholt werden.
 
14. Verfahren nach Anspruch 12 oder 13, dadurch gekennzeichnet durch folgende Schritte: Anzeige der Mengenmessung und, falls abweichend von der tatsächlich gelieferten Menge, Eingabe der der Mengenmessung entsprechenden besagten gelieferten Menge in einen Rechner, um wenigstens einen Korrekturkoeffizienten zu berechnen.
 
15. Verfahren nach Anspruch 12, 13 oder 14, dadurch gekennzeichnet, daß in einem weiteren Schritt die elektronisch berechnete wahre gelieferte Menge angezeigt wird.
 


Revendications

1. Réseau de données pour comptabiliser un certain nombre de fournitures de biens de consommation liquides, comprenant une capsule formant mémoire portable (18), une première station de données (11) dans laquelle cette capsule (18) est connectable en utilisation pour entrer des données et informations de fourniture dans la capsule formant mémoire portable (18), et une seconde station de données portable (20, 22) portée et utilisation, à déplacement, par un véhicule (19) de fourniture de biens de consommation liquides en vue d'un transport vers divers sites de fourniture, ce véhicule (19) ayant des moyens de mesure des biens de consommation délivrés qui comportent un capteur d'écoulement de fluide (42) pour délivrer des signaux électriques indicatifs d'une mesure quantitative de l'écoulement fluidique d'un fluide délivré, ladite capsule (18) étant également connectable en utilisation à ladite seconde station de données (20, 22) pour extraire des informations et données de fourniture, et entrer des informations et données de biens de consommations délivrés dans la capsule (18) formant mémoire portable, la seconde station de données (20, 22) comprenant des moyens de calcul (20) sensibles aux signaux électriques émis par le capteur d'écoulement fluidique (42) pour calculer un montant de facturation à partir des informations et données de biens de consommation délivrés correspondant à chaque fourniture de biens de consommation et à partir des informations de données de fourniture pour la fourniture stockée dans la capsule (18), et également pour convertir ces signaux électriques ou une représentation visuelle du volume délivré de ce fluide, ladite seconde station de données (20, 22) comprenant en outre des moyens de mémorisation (60) en communication électrique avec lesdits moyens de calcul (20) pour stocker et délivrer un coefficient de correction pour la mesure électrique quantitative de manière à corriger la quantité mesurée de fluide délivré pour obtenir une quantité délivrée vraie, ces moyens de mémorisation (60) étant actionnables selon un mode de calibrage pour entrer et mémoriser le coefficient de correction basé sur une autre mesure électrique quantitative fournie par le capteur d'écoulement fluidique (42) en réponse à une fourniture antérieure d'un volume connu du même fluide.
 
2. Réseau de données selon la revendication 1, caractérisé en ce que les moyens de calcul (20) comprennent un élément processeur central (100), un clavier (24) pour entrer des informations et données de biens de consommation délivrés dans, et extraire des informations et données de fourniture de la capsule (18) formant mémoire portable, et un écran numérique (26), cette représentation visuelle du volume délivré étant une lecture numérique sur cet écran.
 
3. Réseau de données selon la revendication 2, caractérisé en ce que lesdits moyens de mémorisation (60) comprennent une mémoire non volatile pour mémoriser ledit coefficient de correction, ce coefficient étant réglable vers une nouvelle valeur au moyen du clavier (24) des moyens de calcul (20).
 
4. Réseau de données selon l'une des revendications 1 à 3, caractérisé en ce que les moyens de mémorisation (60) pour mémoriser et délivrer un coefficient de correction pour ladite mesure électrique quantitative comprennent un commutateur (61) pour actionner lesdits moyens de mémorisation (60) selon un mode parmi deux, un premier mode pour régler le coefficient de calibrage et un second mode pour appliquer ce coefficient de calibrage audit élément processeur central (100).
 
5. Réseau de données selon la revendication 4, caractérisé en ce que les moyens de mémorisation (60) comprennent des moyens (62) pour interdire à du personnel non autorisé, l'accès au commutateur (61).
 
6. Réseau de données selon l'une des revendications 1 à 5, caractérisé en ce que les moyens de mémorisation (60) sont reliés aux moyens de calcul (20) par une connexion à prises mâle et femelle.
 
7. Réseau de données selon l'une des revendications 1 à 6, caractérisé en ce que ledit capteur d'écoulement fluidique (42) est muni de moyens de détection de température fluidique (101) pour fournir une mesure de température de fluide délivré, et les moyens de calcul (20) sont conçus pour corriger la quantité mesurée de fuel délivré pour obtenir une quantité délivrée vraie, également en conformité avec cette mesure de température.
 
8. Réseau de données selon l'une des revendications 1 à 7, caractérisé en ce que ledit capteur d'écoulement fluidique (42) comprend un rotor (57) ayant du matériau magnétisable disposé en des régions circonférentielles de la périphérie de celui-ci, et au moins une tête de détection magnétique (59, 59') disposée de manière adjacente au rotor (57) pour délivrer des impulsions de signal électrique en réponse à un mouvement relatif de ce rotor (57) par rapport à ladite tête de détection magnétique (59, 59').
 
9. Réseau de données selon la revendication 8, caractérisé par deux têtes de détection magnétique (59, 59') dans le capteur de fluide (42).
 
10. Réseau de données selon la revendication 9, caractérisé en ce que ces deux têtes de détection magnétique (59, 59') sont disposées sur des cotés opposés dudit rotor (57).
 
11. Réseau de données selon l'une des revendications 8, 9 ou 10, caractérisé en ce que le rotor (57) est relié à une roue à pales qui tourne en réponse à un écoulement dudit fluide, et de ce fait entraîne en rotation le rotor (57) relativement à la tête ou aux têtes magnétiques (59, 59').
 
12. Procédé pour réaliser et facturer des distributions de biens de consommation liquides à un certain nombre de clients en divers sites de distribution respectifs, comprenant les étapes consistant à entrer, en une station de données (11), dans un milieu de mémorisation portable (18) des informations et données de fixation de prix de client relatives à des biens de consommation liquides à délivrer à plusieurs clients, placer ledit milieu de mémorisation portable (18) en communication avec des moyens de calcul (20), portés par un véhicule de distribution de biens de consommation liquides (19), pour fournir un écoulement à double flux d'informations et de données entre le milieu de mémorisation portable (18) et les moyens de calcul (20), obtenir une mesure quantitative d'au moins un bien de consommation liquide distribué à chaque client donné en un site de distribution en utilisant des moyens de mesure de biens de consommation distribués (42), extraire dudit milieu de mémorisation (18) les informations et données de fixation de prix correspondant à chacune des distributions de biens de consommation liquides, et répondre, en rendant les moyens de calcul sensibles aux moyens de mesure (42), à ladite mesure quantitative et auxdites informations et données de fixation de prix correspondantes pour calculer un montant de facturation pour chaque distribution à chacun desdits clients correspondants, cette mesure quantitative étant obtenue électroniquement à partir des moyens de mesure (42) en fournissant une première sortie électrique indicative de la quantité de biens de consommation liquides distribués, en extrayant un coefficient de correction mémorisé et en calculant électroniquement une quantité distribuée vraie par correction de la mesure quantitative conformément au coefficient de correction extrait, ledit procédé comprenant en outre les étapes de calibrage consistant à mesurer électroniquement une quantité connue, déterminer au moins un coefficient de correction pour cette quantité connue en réponse à ladite sortie électrique, de sorte que cette sortie électrique est une représentation vraie de la valeur de ladite quantité connue, et à stocker électroniquement ce coefficient de correction en vue de son utilisation pour le calcul de ladite quantité distribuée vraie.
 
13. Procédé selon la revendication 12, caractérisé en ce que plus d'une mesure quantitative est réalisée, et en ce que les étapes de calibrage sont répétées pour chaque mesure quantitative consécutive.
 
14. Procédé selon l'une des revendications 12 ou 13, caractérisé par les étapes complémentaires consistant à visualiser la mesure quantitative et, si elle est différente d'une quantité distribuée vraie, à entrer alors cette quantité distribuée pour la mesure quantitative dans un calculateur en vue de la détermination d'au moins un coefficient de correction.
 
15. Procédé selon l'une des revendications 12, 13 ou 14, caractérisé par l'étape complémentaire consistant à visualiser la quantité distribuée vraie calculée électroniquement.
 




Drawing